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Fuel· 2026Q1

In situ generation of NiFeOOH mitigates metal-organic framework degradation for ampere‑level oxygen evolution reaction and anion‑exchange membrane water electrolysis

Yanbing Huang, Xuran Mao, Guo Wen, Fuxi Bao

Short summary

NiFeOOH generated in situ within a Ni-MOF precursor significantly enhances oxygen evolution reaction (OER) activity and stability, mitigating organic framework degradation and achieving 810 hours of operation at 1.0 A cm−2.

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Key points

  • In-situ generation of NiFeOOH within Ni-MOF precursors creates a composite catalyst (NiFeOOH/Ni-MOF).
  • NiFeOOH formation reduces interfacial charge transfer resistance and enhances OER kinetics.
  • NiFeOOH layer mitigates the degradation of the MOF's organic framework during OER.
  • The NiFeOOH/Ni-MOF catalyst achieves OER stability for over 810 h at 1.0 A cm−2 and overall water splitting for over 1000 h at 1.5 A cm−2.
  • The catalyst demonstrates 210 h durability in anion-exchange membrane water electrolysis at 1.0 A cm−2 with a cell voltage of 1.92 V.

AI-generated from the title and abstract; the full text is not read.

Abstract

NiFe-based metal–organic frameworks (NiFe-MOFs) require reconstruction into metal (oxy)hydroxides to achieve oxygen evolution reaction (OER) activity. However, during the OER process, deep electrochemical reconstruction can lead to the degradation and structural collapse of the organic framework, thereby reducing the activity and stability of the electrocatalyst. Herein, we immerse the Ni-MOF precursor in a mixed salt solution of Ni 2+ and Fe 2+ to in-situ form NiFeOOH/Ni-MOF. In-situ electrochemical impedance spectroscopy (EIS) reveals that the formation of NiFeOOH significantly reduces the interfacial charge transfer resistance and enhances the OER interfacial kinetics. In-situ Raman spectroscopy indicates that NiFeOOH, as the OER active phase, significantly enhances the activity. Furthermore, in-situ / ex-situ Raman spectroscopy and X-ray photoelectron spectroscopy demonstrate that NiFeOOH can mitigate the degradation of the organic framework (O=C–O, C=C) in the MOF. After operating for 810 h at 1.0 A cm −2 , the organic framework is only partially degraded, thereby enhancing the structural stability of the electrocatalyst. As a result, NiFeOOH/Ni-MOF achieves OER stability for over 810 h at 1.0 A cm −2 and overall water splitting for over 1000 h at 1.5 A cm −2 . In 6.0 M KOH at 60 °C, it requires only 1.92 V to drive 1.0 A cm −2 (243.9 A g −1 ) and maintain anion exchange membrane water electrolysis (AEMWE) durability for 210 h.

The authors' abstract, as published at the source. Fuel, 2026 · DOI ↗

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Field: Renewable Energy, Sustainability and the Environment

Renewable Energy, Sustainability and the EnvironmentEnergy